Published November 2013 | Version v1
Journal article

High sensitivity cavity ring down spectroscopy of NO2 between 7760 and 7917 cm−1

  • 1. Laboratory of Theoretical Spectroscopy, V.E. Zuev Institute of Atmospheric Optics, SB, Russian Academy of Sciences, 1, Akademician Zuev square, 634021 Tomsk (Russian Federation)
  • 2. Laboratoire Inter-Universitaire des Systèmes Atmosphériques (LISA), UMR 7583 CNRS et Universités Paris-Est Créteil (UPEC) et Paris 7 Denis Diderot, Institut Paul Simon Laplace - IPSL, 61 Avenue du Général de Gaulle, 94010 Créteil Cedex (France)
  • 3. Université Grenoble 1/CNRS, UMR5588 LIPhy, Grenoble F-38041 (France)

Description

The very weak absorption spectrum of the main isotopologue of nitrogen dioxide, 14N16O2, is investigated for the first time between 7760 and 7917 cm−1. The studied region corresponds to the highest energy range of the vibrational spectra of 14N16O2 investigated so far at high spectral resolution. The absorption spectra were recorded by very high sensitivity Continuous Wave-Cavity Ring Down Spectroscopy with a noise equivalent absorption of αmin≈5×10−11 cm−1. The spectrum results from the superposition of the rovibrational transitions of the 2ν1+5ν2+ν3, 2ν1+ν2+3ν3 and 5ν1+ν3 bands at 7790.9, 7888.2 and 7904.3 cm−1, respectively. The spectrum assignment and modeling were performed using the effective Hamiltonian approach, which involves altogether three bright – (2,5,1), (2,1,3) and (5,0,1) and three dark – (2,7,0), (2,3,2) and (5,2,0) states. As a result, 3020 rovibrational transitions were assigned including 51 extra lines of the 2ν1+3ν2+2ν3 and 5ν1+2ν3 bands. In this way, the overall set of 1494 spin-rotation energy levels were reproduced with an rms of 4.9×10−3 cm−1 for the (obs.−calc) deviations, leading to the determination of 66 fitted parameters. The effective Hamiltonian for the {(5,2,0), (2,3,2), (2,7,0), (2,5,1), (2,1,3), (5,0,1)} interacting states takes into account both the spin–rotation interactions within each vibrational state and C-type Coriolis and anharmonic resonances between different vibrational states, according to symmetry considerations. Indeed for NO2 the (v1,v2±2,v3∓1)↔(v1,v2,v3) spin rotation energy levels are usually coupled through C-type Coriolis resonances, and accordingly the (2,7,0)↔(2,5,1)↔(2,3,2)↔(2,1,3) and (5,2,0)↔(5,0,1) interactions were included in the effective Hamiltonian model. Furthermore, these two blocks of interacting states are coupled by an additional C-type Coriolis and anharmonic resonances. Using the fitted values of the Hamiltonian parameters and the values of the 2ν1+5ν2+ν3, 2ν1+ν2+3ν3 and 5ν1+ν3 bands transition dipole moment operators determined from a fit of a selected set of experimental line intensities, a synthetic spectrum was generated for the entire investigated region and is provided as Supplementary material. -- Highlights: • First analysis of the 2ν1+5ν2+ν3, 2ν1+ν2+3ν3 and 5ν1+ν3 bands. • Three thousand and twenty lines with N≤47, Ka≤7 could be assigned and 1494 energy levels were derived. • Resonance coupling with three dark states – (270), (232) and (520). • Effective Hamiltonian modeling including C-type Coriolis and anharmonic resonances. • Unusual high intensity of the 2ν1+5ν2+ν3 and 2ν1+ν2+3ν3 bands

Availability note (English)

Available from http://dx.doi.org/10.1016/j.jqsrt.2013.06.026

Additional details

Identifiers

DOI
10.1016/j.jqsrt.2013.06.026;
PII
S0022-4073(13)00280-X;

Publishing Information

Journal Title
Journal of Quantitative Spectroscopy and Radiative Transfer
Journal Volume
130
Journal Page Range
p. 249-259
ISSN
0022-4073
CODEN
JQSRAE

Conference

Title
12. international HITRAN conference
Acronym
HITRAN2012
Dates
29-31 Aug 2012
Place
Reims (France)

Optional Information

Copyright
Copyright (c) 2013 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.